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Colloid chemical approach to nanoelectrode ensembles with highly controllable active area fraction

机译:具有高度可控活性面积分数的胶体化学方法制备纳米电极的方法

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A novel "bottom-up" approach to highly controllable nanoelectrode ensembles (NEEs) has been developed using colloidal nanoparticle self-assembly techniques. Ibis solution-based strategy allows flexible control over nanoelectrode size, shape, and interspacing of the as-prepared NEEs. Atomic force microscopy (AFM) was proved to be a powerful tool to monitor the NEE topography, which yields parameters that can be used to calculate the fractional nanoelectrode area of the NEEs. AFM, ac impedance, and cyclic voltammetry studies demonstrate that most of nanoelectrodes on the NEEs (at least by 9-min self-assembly) are not diffusionally isolated under conventional ac frequency range and scan rates. As a result, the NEEs behave as "nanoelectrode-patch" assemblies. Besides, the as-prepared NEEs by different self-assembling times show an adjustable sensitivity to heterogeneous electron-transfer kinetics, which may be helpful to sensor applications. Like these NEEs constructed by other techniques, the present NEEs prepared by chemical self-assembly also exhibit the enhancement of electroanalytical detection limit consistent with NEE theory prediction. [References: 59]
机译:已经使用胶体纳米粒子自组装技术开发了一种新型的“自下而上”的高度可控纳米电极组件(NEE)方法。基于宜必思解决方案的策略允许灵活控制纳米电极的尺寸,形状和准备好的NEE的间距。原子力显微镜(AFM)被证明是监测NEE形貌的有力工具,其产生的参数可用于计算NEE的纳米级电极面积。 AFM,交流阻抗和循环伏安法研究表明,在常规交流频率范围和扫描速率下,NEE上的大多数纳米电极(至少通过9分钟的自组装)并未扩散隔离。结果,NEE表现为“纳米电极贴片”组件。此外,通过不同的自组装时间制备的NEE表现出对异质电子转移动力学的可调灵敏度,这可能对传感器应用有所帮助。像通过其他技术构造的这些NEE一样,通过化学自组装制备的当前NEE也表现出与NEE理论预测一致的电分析检测极限的增强。 [参考:59]

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